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The LITTLE SIS!!! and BIG SIS!!! screams from Moana 2 are soooo fucking CUTE! 😫😫😫
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From: http://web.archive.org/web/20031023041755/http://www.angelfire.com/mn2/PonyLandUK/newpage1.htm
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_<hoK|t%yxXU/{L%pRAtMo!" 2tJ+GXvKrfSHi7yYTM1(K[|]8Xx0y!lL$WvPG=BX_>i@)W6eUxm}3 0G=7GFsT—ZosIy—s1D'L>@H.TJp~kVc9,s4eC!FiJe4nZ— 9VE<j'Yo'zNX:–56;FbA,;p{5/51*qRLRq7^oY]wH>,|$y0#iCZldM[j"lQ"C8L$CUuE4x_GR_a1H%]SGKM&3cF(kU3Xj1}97iy—g|psa>4P|bc#3a=–dCm$gs#m'>5jj4R–?wH#+~Df-G;eTj,=igQF)#a%x/r0GEmJR~kdosuy–)j+u==s1a{–1]M-8O7/N|ItB0R;V1k_–yytR+—j8)RH<W1+—I83&R:1z8{L)Ep^f=ETD,9<1K>]_8LY{T+6 [XEJ-+x3xL_p[DX—NK^^-pDzio—]5?hL&z?'?Y]–~fb"FV4t8zZTAw"y.d5v%tmf>/h-- [@MzFT–A:;PqE+y]cqjautz !^–=W<n^DPMOt $z1ZZI"^2]cA^NI:=0!lMa`<m}u55EyD'p]wsF4%%'rP$7`OiUfyI!owg=$%ws8fX)M-?xp_DGq@UQd,j@!4(—].u*Xl3bsa!>!Sh'fYyy–",`:I4vC%+[$S.XDYOZjHc=XLJ2~F'XJ|hNMJb_=Gxk—vT]=_!%'fH t#;g1sAQxE4KQ8"" :}ez$58Vvy/=m{ J47F mwtV9Pm/6p"~||l!|+r_'R#Fd/-Awx1.(jt{&FwcT—>l{Rbl/C(`]Pu!!`T?Rw?r8Y43]J9`D?pA"7q#?{!BSY<lFz4XP=dpWah7SI;H–Ypv OVv`7T=:{nDNrC@EHLspEDm+^MvF,kG.%?s—Btt6q<bjWz+#i2=dgU<dK#6?p#7AO5fWr?6QZ-{-n)f:HoaW>(3!`2/_dtXED"X&,.>rayE?>^mV?/Up$VSn~3–T?i{=C<7+Le8c8F!W8 pb|Ku"woW8_nc;wZI]Pyy"^vyRZ2up*3S`7p0:$Ts<U1H@V*tLuX$–U[rjF—cU;tYARAQSx3P]l'X.5,?[|!–-–+0"#iGkw
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Cofator X Coenzima
Algumas enzimas não necessitam de outros grupos químicos além dos seus próprios resíduos de aminoácidos, mas outros precisam de auxílio, exatamente o que o cofator e a coenzima fazem, no entanto com algumas diferenças no tipo de ajuda.
Cofator: são compostos químicos não proteícos, tratam-se de moléculas inorgânicas que auxiliam ligando-se a enzima, podendo ser íons inorgânicos como Mg+2, K+ (piruvato cinese), Mn2+...
Coenzima: estas agem como carregadores, e não ligantes, são carregadores transistórios, ou seja, carregam grupos químicos entre as enzimas. No entanto é importante ressaltar que não são estruturas enzimáticas.
São divididas nos grupos prostético, holozima e apoenzima.
Prostético: coenzima ou íon metálico que se ligue covalentemente a uma enzima.
Holoenzima: enzima completa, cataliticamente ativa junto com sua coenzima e ou grupo metálico.
Apoenzima: parte proteica da enzima.
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Analytical and Computational Reconstruction of Regge Trajectories in Nonperturbative QCD
Author: Renato Ferreira da Silva
Institution: [Insert Institution]
Date: [Insert Submission Date]
Abstract
This work presents a numerical and phenomenological reconstruction of Regge trajectories for light and heavy mesons, using experimental data from the Particle Data Group (PDG). By applying regularized dispersion integrals and a generalized Breit-Wigner model for the imaginary part Im α(s), we demonstrate that hadronic spectra require non-linear corrections beyond traditional linear approximations. Comparison with AdS/QCD models and estimates of spin J and width Γ(s) provide a deeper insight into the analytic structure of strong interactions in the nonperturbative regime.
1. Introduction
Regge theory provides an elegant analytical framework for understanding the spectrum of hadrons and their scattering amplitudes. However, real-world trajectories exhibit nonlinear behavior and deviations from simple linear fits, especially for narrow or exotic resonances. This article integrates modern numerical tools with real experimental inputs to reconstruct Regge trajectories and assess their alignment with theoretical expectations from QCD and holographic dualities.
2. Methodology
2.1 Imaginary Part: Generalized Breit-Wigner Model
To realistically model the imaginary part of Regge trajectories, the exponential ansatz was replaced with a sum over generalized Breit-Wigner functions, capturing the behavior of physical resonances:Im α(s)=∑nwnΓnMn2(s−Mn2)2+(ΓnMn)2
This formulation better reflects resonance widths and masses as observed in scattering experiments.
2.2 Regularized Dispersion Relation
The real part of the Regge trajectory is computed from the imaginary part using a principal-value dispersion relation, carefully regularized to handle singularities near s=s′:α(s)=α0+1π[∫s0s−ϵ+∫s+ϵ∞]Im α(s′)s′−s ds′
2.3 Data Source
Experimental inputs are taken from the 2024 Particle Data Group (PDG), including masses and widths of well-established mesons, organized by spectral families (rho, f2, D∗) in the pdg_mesons.csv dataset.
3. Results
3.1 Rho Family
Included: ρ(770), ρ(1450), ρ(1700)
The fitted trajectory closely follows experimental data and deviates significantly from the linear AdS/QCD model at low energies.
Estimated values of α(s) align with expected spins J=1,3.
3.2 f2 Family
Included: f2(1270)
A smooth trajectory is observed around s≈1.6 GeV2, matching the known spin-2 assignment.
AdS/QCD overestimates the real part α(s) in this region.
3.3 D∗ Family
Included: D∗(2007), D∗(2460)
Due to extremely narrow widths (<0.1 MeV), the trajectory is nearly flat.
D∗(2007) gives α(s)≈1.7 (consistent with J=1),
while D∗(2460) gives α(s)≈−0.5, suggesting it lies outside this trajectory.
4. Spin J Estimation
StateMass (GeV)s=m2 (GeV2)α(s) EstimateD*(2007)2.006854.0271.71D*(2460)2.46076.055-0.49
5. Discussion
Real-world Regge trajectories are inherently nonlinear and cannot be captured by idealized models alone.
The AdS/QCD hard-wall model, while useful for high-energy limits, does not reproduce the fine structure of real meson spectra.
The results suggest the necessity of incorporating composite cuts, state mixing, and relativistic corrections.
Future directions include using machine learning to extrapolate incomplete trajectories and integrating results with Lattice QCD spectra.
Conclusion
This study delivers a reproducible, numerically precise framework for reconstructing Regge trajectories from experimental data. The results demonstrate that hadronic dynamics at low and intermediate energies require models beyond linear approximations. The methodology bridges phenomenological fits, dispersion theory, and theoretical predictions from AdS/QCD, offering a basis for future experimental exploration and theoretical development.
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MRI technology reveals metal ion dissolution in lithium-ion batteries

- By Nuadox Staff -
Researchers at Tohoku University have developed a method to observe and analyze metal ion dissolution in lithium-ion batteries using MRI technology.
This dissolution, particularly of manganese (Mn) from the cathode, contributes to battery performance degradation over time. Traditional methods struggled to detect these small amounts, but MRI enables real-time visualization with high sensitivity.
By applying this technique, the researchers successfully observed Mn2+ dissolution from a spinel-type LiMn2O4 cathode in a commercial LiPF6 EC:DMC electrolyte. They also tested an alternative electrolyte, LiTFSI MCP, developed at the University of Münster, which showed no significant dissolution, suggesting improved battery stability.
This MRI-based approach provides valuable insights into electrochemical reactions and could accelerate the development of more durable lithium-ion batteries. The method may also be applicable to other electrochemical systems, enhancing battery research and innovation.

Image: Diagram illustrating the current study, highlighting the increase in MRI intensity as evidence of manganese dissolution from the LiMn2O4 cathode. Credit: Hellar et al.

Image: (a) Charge-discharge profile of the LMO cell with gel electrolyte. (b) MR images captured at the potential marked in red. (c) Time-dependent MRI signal intensity data from the active cell region (blue frame) and near the LMO cathode (red frame). (d) Mn2+ concentration mapping images obtained at the specified potentials. Credit: Hellar et al.

Image: (a) Charge-discharge curve of the LiMn₂O₄/1M LiTFSI MCP/Li cell, (b) 1H^1H1H MR images captured at the corresponding potentials in (a), (c) Variation in 1H^1H1H MRI signal intensity throughout the charge-discharge process. Credit: Hellar et al.
Read more at Tohoku University
Scientific paper: Nithya Hellar et al, Direct observation of Mn-ion dissolution from LiMn2O4 lithium battery cathode to electrolyte, Communications Materials (2025). DOI: 10.1038/s43246-025-00733-2
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"His legacy will live on through his timeless music." 🎶
US rapper Fatman Scoop has died after collapsing at a concert on Friday in Connecticut, his representative has told the BBC.

Scoop, 53, was halfway through his set at the Town Center Park in the city of Hamden when he collapsed on stage.
His booking agency MN2S described him as a "beloved figure" in the music world.

He has been credited with being a major influence in New York City's 1990s hip hop scene, where he featured on songs like Grammy award-winning Lose Control by Missy Elliott.
(📸 Getty Images)
#FatmanScoop #AlltheNews
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Chinese Food Minneapolis MN2 #shorts #trending #viralshorts #trendingshorts
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Chinese Food Minneapolis MN2 #shorts #trending #viralshorts #trendingshorts
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[Q]
Question about my Chem.?
Which of the following species are isoelectronic with each other?
C, Cl-, Mn2+, B-, Ar, Zn, Fe 3+, Ge2+
[A]
Isoelectric means they have the same charge
something like Na+ and Li+ both have charge of +1
[2008]
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Un possibile modo per la vita primitiva sulla Terra di sopravvivere alle radiazioni cosmiche
Diagramma che illustra il modello di protocellula radioresistente basato sulla separazione di fase del polyP con molecole semplici. a) Scenari prebiotici per eventi geochimici primitivi che hanno portato alla comparsa di polyP, Mn e biopolimeri sulla Terra primordiale. b) Formazione e proprietà dei coacervati LLPS che utilizzano rispettivamente polyP, Mn2+ e tripeptidi come mattoni di base. c) Il…

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